Influence and Analysis of Music Teaching Environment Monitoring on Students’ Mental Health Using Data Mining Technology

Author:

Dong Xinlei1ORCID,Kang Xin2,Ding Xiaolei3

Affiliation:

1. School of Biology and Food Engineering, Changshu Institute of Technology, Jiangsu 215500, China

2. Rovira I Virgili University, Tarragona 43001, Spain

3. Linyi Longteng Primary School, Shandong 276000, China

Abstract

Students currently mostly experience psychological issues like worry and fear, which are primarily brought on by the high demands placed on them. One psychotherapy technique is music therapy. The goal is to use music to enhance health, particularly as a tool to break down barriers both inside and outside the body. Based on data mining (DM) technologies, this paper examines the impact of music education on students’ psychological health. The study demonstrates that the DM algorithm utilised in this work has the lowest error rate, with an average error rate of only 6.90%, followed by the ACA method with an average error rate of 17.48%, and finally the AI algorithm with an average error rate of 29.35%. As can be shown, this approach is more suited to research the effects of music instruction on students’ psychological well-being. The functional module based on DM is developed through simulation experiments to confirm the application effectiveness of the DM algorithm. This is done by using the data source of DM and the structural model of the mining system to build this module on the foundation of the original psychological evaluation system.

Funder

2021 Jiangsu Social Science Application Research Fine Project of Ideological and Political Education in Universities special project

Publisher

Hindawi Limited

Subject

Health, Toxicology and Mutagenesis,Public Health, Environmental and Occupational Health

Reference23 articles.

1. Evaluation of the effect of music education on improving students' psychological health based on intelligent fuzzy system;T. Zhang;Journal of Intelligent and Fuzzy Systems,2021

2. A study of new-style music promoting the psychological health of college students;L. I. Zhiqiao;Journal of Educational Science of Hunan Normal University,2018

3. VoxelEmbed: 3D instance segmentation and tracking with voxel embedding based deep learning;M. Zhao

4. Self-Supervised Locality Preserving Low-Pass Graph Convolutional Embedding for Large-Scale Hyperspectral Image Clustering

5. Multi-Source Domain Transfer Discriminative Dictionary Learning Modeling for Electroencephalogram-Based Emotion Recognition

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